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True-angle sparse Bayesian learning for horizontal line arrays in a multipath shadow-zone environment.

Created on 26 Aug 2026

Authors

Zhengchao Huang, Zhenglin Li, Peng Xiao

Published in

JASA express letters. Volume 6. Issue 8. Aug 01, 2026.

Abstract

Horizontal line arrays may exhibit large bearing-estimation errors in deep-ocean shadow zones, particularly near the endfire direction, because the received field is dominated by vertical-plane multipath rather than a direct arrival. To address this problem, this paper analyzes the geometric relationship among the ray arrival angle, the apparent bearing measured by a horizontal line array, and the true target bearing. Based on this relationship, a true-angle sparse Bayesian learning (TA-SBL) method is proposed. In TA-SBL, several apparent-angle branches associated with the same candidate true bearing are represented by one sparse block and controlled by a shared hyperparameter so that the bearing estimate is obtained directly in the true-angle domain. Simulations show reduced multipath-induced bearing bias in the examined cases.

PMID:
42644707
Bibliographic data and abstract were imported from PubMed on 26 Aug 2026.

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